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due to some circunstances of my code, i'm using the following button of a form to call a jquery function:

<form id="formElem" name="formElem" enctype="multipart/form-data" action="" method="post">

....

<button name='enviar_candidatura' id='enviar_candidatura' value='enviar_candidatura' onclick='return false;' type='submit'>Enviar Candidatura</button> 

...

The jquery function that is called:

$('#enviar_candidatura').bind('click',function(){
    var form = $('#formElem');

    var conta_Duplicates;
    conta_Duplicates=dadosImportantes();
    //alert("Deu");
    var preenchimentoForm=true;
    //alert("Contasssss"+conta1);
    //var eventos=$countEventos;
    var eventos=conta_Duplicates[2];
    //alert("Wiggins"+eventos);
    //var empregos=$countEmpregos;
    var empregos=conta_Duplicates[1];
    //var cursos=$countCursos;
    var cursos=conta_Duplicates[0];

    //alert($countEmpregos);
    /*if($('#formElem').data('errors')){
        preenchimentoForm=false;

        dadosFormularios(form, preenchimentoForm, cursos, empregos, eventos);
        return false;
    }
    else{*/
        dadosFormularios(form, preenchimentoForm, cursos, empregos, eventos);
    //}
});

Now what i need is to receive in this function the formElem so that i can define here the action="" of the form and call it using form.action="index.php....".

As you can see in the code above, i tried using

var form = $('#formElem');

however, that doesn't work, i tried:

form.action = 'index.php?pagina=candidaturasB&'+ qstringA;  
form.submit();

but without success :/

share|improve this question
    
You don't happen to have an element with the "action" name do you? Something like <button name="action"> ... for if you do then whatever they suggest you to do will not work. Just a thought since I don't know what can be a problem since all other suggestions are rejected. –  Grzegorz Aug 30 '12 at 0:49

3 Answers 3

Since form is a jQuery object it doesn't have the property action. Try this:

form.attr('action', 'url');
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sorry but not working: i tried: var form = $('#formElem'); form.attr('action', 'index.php'); form.submit(); but nothing done :( –  user1511579 Aug 29 '12 at 17:32

form is jQuery object, it dosn't have action property. You should use attr method:

form.attr('action', 'index.php?pagina=candidaturasB&'+ qstringA);
share|improve this answer
    
sorry but not working: i tried: var form = $('#formElem'); form.attr('action', 'index.php'); form.submit(); but nothing done :( –  user1511579 Aug 29 '12 at 17:31
    
try form.attr('method', 'post') before form.submit() –  Konrad Hałas Aug 29 '12 at 17:36
    
not working :/ can it be because of my button is defined like this: <button name='enviar_candidatura' id='enviar_candidatura' value='enviar_candidatura' onclick='return false;' type='submit'>Enviar Candidatura</button> i need him like this that's why i don't change him. –  user1511579 Aug 29 '12 at 17:38
    
Are you really sure that this is a main problem? Try submit form from firebug/webinsector console. –  Konrad Hałas Aug 29 '12 at 17:47
    
well, if i use this: window.location.href = 'index.php?pagina=candidaturasB&'+ qstringA; it works, so i guess this is the main problem :/ –  user1511579 Aug 29 '12 at 18:04

try this

 form.attr("action", 'index.php?pagina=candidaturasB&'+ qstringA)
 form.submit();

i think there are no method .action , so you need to set action as attribute

share|improve this answer
    
sorry but not working: i tried: var form = $('#formElem'); form.attr('action', 'index.php'); form.submit(); but nothing done :( –  user1511579 Aug 29 '12 at 17:32

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